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Temperature dependence of the Goos-Haenchen shift in the nonlinear metal-dielectric nanocomposites

机译:GoOS-Haenchen偏移在非线性金属介质纳米复合材料中的温度依赖性

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In this paper the temperature-dependent Goos-Hanchen (GH) shift of the nonlinear nanocomposites made of the ellipsoidal nonlinear metal nanoparticles and ellipsoidal dielectric nanoparticles is investigated theoretically in the range of the visible wavelengths. We used the effective medium approximation in the quasi-static regime to calculate the effective permittivity of a composite (epsilon eff) and the stationary phase method is utilized to investigate the GH shifts. Spectral representation theory has been used to obtain the local electric field in the nonlinear metal nanoparticles. The temperature impact on the GH shift is explained by the temperature-dependent permittivity of nonlinear metal nanoparticles in the range of 300-1200K. Our numerical analysis revealed that in addition to the magnitude of the GH shift, the lower and upper threshold of the GH bistability as a nonlinear response will be affected by a temperature increment. So that, the width of the bistability, i.e., the difference between the low and high threshold of bistability, can be tuned by temperature. It is important to note that the GH shift can be switched from positive to negative values in high temperatures for a given physical parameters. This effect can open the interesting possibility of optical switching in the considered structures. Moreover, the occurrence of optical bistability as a function of the volume fraction of nanoparticles and depolarization factor (indicating the shape of nanoparticles) are discussed. Finally, the influence of the wavelength and intensity of the incident light on the nonlinear GH shift is presented. Optimizing the results of the present work may be practically utilized in the designing of optical switching-based devices including metal-dielectric nanocomposites.
机译:本文在理论上在可见波长的范围内研究了由椭圆形非线性金属纳米颗粒和椭圆形介电纳米粒子制成的非线性纳米复合材料的温度依赖性GoOS-hanchen(GH)偏移。我们使用了准静态制度中的有效介质近似,以计算复合材料(epsilon eff)的有效介电常数,并且使用静止相位方法来研究GH变速。光谱表示理论已被用于获得非线性金属纳米颗粒中的局部电场。通过300-1200K范围内的非线性金属纳米颗粒的温度依赖性介质来解释对GH变速器的温度撞击。我们的数值分析显示,除了GH偏移的幅度之外,GH双稳态的较低和上阈值作为非线性响应将受到温度增量的影响。因此,可以通过温度调谐双稳态的宽度,即,高度和高度的双稳态阈值之间的差异。重要的是要注意,对于给定物理参数,可以在高温下从正到负值切换GH移位。这种效果可以打开所考虑的结构中光学切换的有趣可能性。此外,讨论了作为纳米颗粒的体积分数和去极化因子的函数的光学双体性的发生(表明纳米颗粒的形状)。最后,提出了入射光波长和强度对非线性GH变速的影响。优化当前工作的结果可以实际上用于设计基于光学切换的装置,包括金属介质纳米复合材料。

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